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Don'T judge books by their covers: vascular smooth muscle cells in arterial pathologies
Fisher, Edward A; Miano, Joseph M
PMCID:4001921
PMID: 24733539
ISSN: 0009-7322
CID: 882042
Effects of native and myeloperoxidase-modified apolipoprotein a-I on reverse cholesterol transport and atherosclerosis in mice
Hewing, Bernd; Parathath, Saj; Barrett, Tessa; Chung, Wing Ki Kellie; Astudillo, Yaritzy M; Hamada, Tadateru; Ramkhelawon, Bhama; Tallant, Thomas C; Yusufishaq, Mohamed Shaif S; Didonato, Joseph A; Huang, Ying; Buffa, Jennifer; Berisha, Stela Z; Smith, Jonathan D; Hazen, Stanley L; Fisher, Edward A
OBJECTIVE: Preclinical and clinical studies have shown beneficial effects of infusions of apolipoprotein A-I (ApoA-I) on atherosclerosis. ApoA-I is also a target for myeloperoxidase-mediated oxidation, leading in vitro to a loss of its ability to promote ATP-binding cassette transporter A1-dependent macrophage cholesterol efflux. Therefore, we hypothesized that myeloperoxidase-mediated ApoA-I oxidation would impair its promotion of reverse cholesterol transport in vivo and the beneficial effects on atherosclerotic plaques. APPROACH AND RESULTS: ApoA-I(-/-) or apolipoprotein E-deficient mice were subcutaneously injected with native human ApoA-I, oxidized human ApoA-I (myeloperoxidase/hydrogen peroxide/chloride treated), or carrier. Although early postinjection (8 hours) levels of total ApoA-I in plasma were similar for native versus oxidized human ApoA-I, native ApoA-I primarily resided within the high-density lipoprotein fraction, whereas the majority of oxidized human ApoA-I was highly cross-linked and not high-density lipoprotein particle associated, consistent with impaired ATP-binding cassette transporter A1 interaction. In ApoA-I(-/-) mice, ApoA-I oxidation significantly impaired reverse cholesterol transport in vivo. In advanced aortic root atherosclerotic plaques of apolipoprotein E-deficient mice, native ApoA-I injections led to significant decreases in lipid content, macrophage number, and an increase in collagen content; in contrast, oxidized human ApoA-I failed to mediate these changes. The decrease in plaque macrophages with native ApoA-I was accompanied by significant induction of their chemokine receptor CCR7. Furthermore, only native ApoA-I injections led to a significant reduction of inflammatory M1 and increase in anti-inflammatory M2 macrophage markers in the plaques. CONCLUSIONS: Myeloperoxidase-mediated oxidation renders ApoA-I dysfunctional and unable to (1) promote reverse cholesterol transport, (2) mediate beneficial changes in the composition of atherosclerotic plaques, and (3) pacify the inflammatory status of plaque macrophages.
PMCID:3966977
PMID: 24407029
ISSN: 1079-5642
CID: 866832
An abundant dysfunctional apolipoprotein A1 in human atheroma
Huang, Ying; Didonato, Joseph A; Levison, Bruce S; Schmitt, Dave; Li, Lin; Wu, Yuping; Buffa, Jennifer; Kim, Timothy; Gerstenecker, Gary S; Gu, Xiaodong; Kadiyala, Chandra S; Wang, Zeneng; Culley, Miranda K; Hazen, Jennie E; Didonato, Anthony J; Fu, Xiaoming; Berisha, Stela Z; Peng, Daoquan; Nguyen, Truc T; Liang, Shaohong; Chuang, Chia-Chi; Cho, Leslie; Plow, Edward F; Fox, Paul L; Gogonea, Valentin; Tang, W H Wilson; Parks, John S; Fisher, Edward A; Smith, Jonathan D; Hazen, Stanley L
Recent studies have indicated that high-density lipoproteins (HDLs) and their major structural protein, apolipoprotein A1 (apoA1), recovered from human atheroma are dysfunctional and are extensively oxidized by myeloperoxidase (MPO). In vitro oxidation of either apoA1 or HDL particles by MPO impairs their cholesterol acceptor function. Here, using phage display affinity maturation, we developed a high-affinity monoclonal antibody that specifically recognizes both apoA1 and HDL that have been modified by the MPO-H2O2-Cl(-) system. An oxindolyl alanine (2-OH-Trp) moiety at Trp72 of apoA1 is the immunogenic epitope. Mutagenesis studies confirmed a critical role for apoA1 Trp72 in MPO-mediated inhibition of the ATP-binding cassette transporter A1 (ABCA1)-dependent cholesterol acceptor activity of apoA1 in vitro and in vivo. ApoA1 containing a 2-OH-Trp72 group (oxTrp72-apoA1) is in low abundance within the circulation but accounts for 20% of the apoA1 in atherosclerosis-laden arteries. OxTrp72-apoA1 recovered from human atheroma or plasma is lipid poor, virtually devoid of cholesterol acceptor activity and demonstrated both a potent proinflammatory activity on endothelial cells and an impaired HDL biogenesis activity in vivo. Elevated oxTrp72-apoA1 levels in subjects presenting to a cardiology clinic (n = 627) were associated with increased cardiovascular disease risk. Circulating oxTrp72-apoA1 levels may serve as a way to monitor a proatherogenic process in the artery wall.
PMCID:3923163
PMID: 24464187
ISSN: 1078-8956
CID: 806892
High-density lipoproteins put out the fire
Moore, Kathryn J; Fisher, Edward A
Macrophages in atherosclerotic plaques are activated, inflammatory cells that directly contribute to the disease process. De Nardo et al. (2013), now report that high-density lipoproteins (HDL) can reprogram macrophages to be less inflammatory through an ATF3-dependent pathway, providing another mechanistic basis for the atheroprotective properties of HDL.
PMCID:3962668
PMID: 24506861
ISSN: 1550-4131
CID: 806952
High-density lipoprotein and atherosclerosis regression: evidence from preclinical and clinical studies
Feig, Jonathan E; Hewing, Bernd; Smith, Jonathan D; Hazen, Stanley L; Fisher, Edward A
High-density lipoprotein (HDL) particles transport (among other molecules) cholesterol (HDL-C). In epidemiological studies, plasma HDL-C levels have an inverse relationship to the risk of atherosclerotic cardiovascular disease. It has been assumed that this reflects the protective functions of HDL, which include their ability to promote cholesterol efflux. Yet, several recent pharmacological and genetic studies have failed to demonstrate that increased plasma levels of HDL-C resulted in decreased cardiovascular disease risk, giving rise to a controversy regarding whether plasma levels of HDL-C reflect HDL function, or that HDL is even as protective as assumed. The evidence from preclinical and (limited) clinical studies shows that HDL can promote the regression of atherosclerosis when the levels of functional particles are increased from endogenous or exogenous sources. The data show that regression results from a combination of reduced plaque lipid and macrophage contents, as well as from a reduction in its inflammatory state. Although more research will be needed regarding basic mechanisms and to establish that these changes translate clinically to reduced cardiovascular disease events, that HDL can regress plaques suggests that the recent trial failures do not eliminate HDL from consideration as an atheroprotective agent but rather emphasizes the important distinction between HDL function and plasma levels of HDL-C.
PMCID:3918097
PMID: 24385513
ISSN: 0009-7330
CID: 800012
A statin-loaded reconstituted high-density lipoprotein nanoparticle inhibits atherosclerotic plaque inflammation
Duivenvoorden, Raphael; Tang, Jun; Cormode, David P; Mieszawska, Aneta J; Izquierdo-Garcia, David; Ozcan, Canturk; Otten, Maarten J; Zaidi, Neeha; Lobatto, Mark E; van Rijs, Sarian M; Priem, Bram; Kuan, Emma L; Martel, Catherine; Hewing, Bernd; Sager, Hendrik; Nahrendorf, Matthias; Randolph, Gwendalyn J; Stroes, Erik S G; Fuster, Valentin; Fisher, Edward A; Fayad, Zahi A; Mulder, Willem J M
Inflammation is a key feature of atherosclerosis and a target for therapy. Statins have potent anti-inflammatory properties but these cannot be fully exploited with oral statin therapy due to low systemic bioavailability. Here we present an injectable reconstituted high-density lipoprotein (rHDL) nanoparticle carrier vehicle that delivers statins to atherosclerotic plaques. We demonstrate the anti-inflammatory effect of statin-rHDL in vitro and show that this effect is mediated through the inhibition of the mevalonate pathway. We also apply statin-rHDL nanoparticles in vivo in an apolipoprotein E-knockout mouse model of atherosclerosis and show that they accumulate in atherosclerotic lesions in which they directly affect plaque macrophages. Finally, we demonstrate that a 3-month low-dose statin-rHDL treatment regimen inhibits plaque inflammation progression, while a 1-week high-dose regimen markedly decreases inflammation in advanced atherosclerotic plaques. Statin-rHDL represents a novel potent atherosclerosis nanotherapy that directly affects plaque inflammation.
PMCID:4001802
PMID: 24445279
ISSN: 2041-1723
CID: 759972
A regulator of secretory vesicle size, kelch-like protein 12, facilitates the secretion of apolipoprotein b100 and very-low-density lipoproteins--brief report
Butkinaree, Chutikarn; Guo, Liang; Ramkhelawon, Bhama; Wanschel, Amarylis; Brodsky, Jeffrey L; Moore, Kathryn J; Fisher, Edward A
OBJECTIVE: One of the major risk factors for atherosclerosis is the plasma level of low-density lipoprotein (LDL), which is a product of very-low-density lipoprotein (VLDL). Hepatic apolipoprotein B100 (apoB100) is the essential component that provides structural stability to VLDL particles. Newly translated apoB100 is partially lipidated in the endoplasmic reticulum (ER), forming nascent apoB100-VLDL particles. These particles are further modified to form fully mature VLDLs in the Golgi apparatus. Therefore, the transport of nascent VLDL from the ER to the Golgi represents a critical step during VLDL maturation and secretion and in regulating serum LDL cholesterol levels. Our previous studies showed that apoB100 exits the ER in coat complex II vesicles (COPII), but the cohort of related factors that control trafficking is poorly defined. APPROACH AND RESULTS: Expression levels of Kelch-like protein 12 (KLHL12), an adaptor protein known to assist COPII-dependent transport of procollagen, were manipulated by using a KLHL12-specific small interfering RNA and a KLHL12 expression plasmid in the rat hepatoma cell line, McArdle RH7777. KLHL12 knockdown decreased the secreted and intracellular pools of apoB100, an effect that was attenuated in the presence of an autophagy inhibitor. KLHL12 knockdown also significantly reduced secretion of the most lipidated apoB100-VLDL species and led to the accumulation of apoB100 in the ER. Consistent with these data, KLHL12 overexpression increased apoB100 recovery and apoB100-VLDL secretion. Images obtained from confocal microscopy revealed colocalization of apoB100 and KLHL12, further supporting a direct link between KLHL12 function and VLDL trafficking from the ER. CONCLUSIONS: KLHL12 plays a critical role in facilitating the ER exit and secretion of apoB100-VLDL particles, suggesting that KLHL12 modulation would influence plasma lipid levels.
PMCID:3919549
PMID: 24334870
ISSN: 1079-5642
CID: 740952
Docosahexaenoic acid impairs the maturation of very low density lipoproteins in rat hepatic cells
Maitin, Vatsala; Andreo, Ursula; Guo, Liang; Fisher, Edward A
One mechanism of the lipid-lowering effects of the fish oil n-3 fatty acids [e.g., docosahexaenoic acid (DHA)] in cell and animal models is induced hepatic apolipoprotein B100 (apoB) presecretory degradation. This degradation occurs post-endoplasmic reticulum, but whether DHA induces it before or after intracellular VLDL formation remains unanswered. We found in McA-RH7777 rat hepatic cells that DHA and oleic acid (OA) treatments allowed formation of pre-VLDL particles and their transport to the Golgi, but, in contrast to OA, with DHA pre-VLDL particles failed to quantitatively assemble into fully lipidated (mature) VLDL. This failure required lipid peroxidation and was accompanied by the formation of apoB aggregates (known to be degraded by autophagy). Preventing the exit of proteins from the Golgi blocked the aggregation of apoB but did not restore VLDL maturation, indicating that failure to fully lipidate apoB preceded its aggregation. ApoB autophagic degradation did not appear to require an intermediate step of cytosolic aggresome formation. Taken with other examples in the literature, the results of this study suggest that pre-VLDL particles that are competent to escape endoplasmic reticulum quality control mechanisms but fail to mature in the Golgi remain subject to quality control surveillance late in the secretory pathway.
PMCID:3927475
PMID: 24136824
ISSN: 0022-2275
CID: 680982
Nanocrystal Core Lipoprotein Biomimetics for Imaging of Lipoproteins and Associated Diseases
Fay, Francois; Sanchez-Gaytan, Brenda L; Cormode, David P; Skajaa, Torjus; Fisher, Edward A; Fayad, Zahi A; Mulder, Willem J M
Lipoproteins are natural nanoparticles composed of phospholipids and apolipoproteins that transport lipids throughout the body. As key effectors of lipid homeostasis, the functions of lipoproteins have been demonstrated to be crucial during the development of cardiovascular diseases. Therefore various strategies have been used to study their biology and detect them in vivo. A recent approach has been the production of lipoprotein biomimetic particles loaded with diagnostically active nanocrystals in their core. These include, but are not limited to: quantum dots, iron oxide or gold nanocrystals. Inclusion of these nanocrystals enables the utilization of lipoproteins as probes for a variety of imaging modalities (computed tomography, magnetic resonance imaging, fluorescence) while preserving their biological activity. Furthermore as some lipoproteins naturally accumulate in atherosclerotic plaque or specific tumor tissues, nanocrystal core lipoprotein biomimetics have been developed as contrast agents for early diagnosis of these diseases.
PMCID:3653343
PMID: 23687557
ISSN: 1941-9066
CID: 5148282
A Nanomedicine-Based Treatment Regimen to Induce Plaque Remodeling to a Favorable Phenotype in Mice With Advanced Atherosclerosis [Meeting Abstract]
Tang, Jun; Lobatto, Mark E; Leong, Wei; Sager, Hendrik; van der Staay, Susanne E; van Rijs, Sarian M; Ramachandran, Sarayu; Astudillo, Yaritzv M; Duivenvoorden, Raphael; Wang, Ying; Tabas, Ira; Fuster, Valentin; Nahrendorf, Matthias; Cormode, David P; Fisher, Edward A; Fayad, Zahi A; Mulder, Willem J
ISI:000332162904167
ISSN: 1524-4539
CID: 1015462